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Suppression of Pro-fibrotic Signaling Potentiates Factor-mediated Reprogramming of Mouse Embryonic Fibroblasts into Induced Cardiomyocytes
Published on: June 3, 2018
Lipoxin A4 prevents high glucose-induced inflammatory response in cardiac fibroblast through FOXO1 inhibition
Fabiola González-Herrera1, Renatto Anfossi1, Mabel Catalán1
1Molecular and Clinical Pharmacology Program, Biomedical Science Institute, Faculty of Medicine, University of Chile, Santiago, Chile.
Insights
High glucose levels trigger heart inflammation and fibrosis in cardiac fibroblasts. Inhibiting FoxO1 and using Lipoxin A4 (LXA4) show potential for treating these heart disorders.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Inflammation Research
Background:
- Cardiac cells synthesize inflammatory molecules for repair, but chronic inflammation leads to fibrosis and dysfunction.
- High glucose (HG) induces cardiac inflammation and fibrosis, with cardiac fibroblasts (CFs) playing a key role.
- Molecular mechanisms of CF inflammation and potential therapeutic targets for HG-induced cardiac dysfunction remain unclear.
Purpose of the Study:
- To investigate the roles of p65/NFκB and FoxO1 in HG-induced CF inflammation.
- To evaluate the anti-inflammatory and cardioprotective effects of Lipoxin A4 (LXA4).
- To identify novel therapeutic targets for HG-induced cardiac disorders.
Main Methods:
- Utilized in vitro and ex vivo models to study HG-induced inflammation in cardiac fibroblasts (CFs).
- Assessed the effects of FoxO1 inhibition and silencing on HG-induced inflammation.
- Examined the impact of LXA4 on FoxO1, p65/NFκB activation, and CF inflammation.
Main Results:
- HG was demonstrated to induce an inflammatory response in CFs.
- Inhibition and silencing of FoxO1 effectively prevented HG-induced inflammatory effects.
- LXA4 treatment suppressed HG-induced activation of FoxO1 and p65/NFκB, reducing CF inflammation.
Conclusions:
- FoxO1 plays a critical role in mediating HG-induced inflammation in cardiac fibroblasts.
- LXA4 exhibits significant anti-inflammatory properties by inhibiting FoxO1 and p65/NFκB pathways.
- FoxO1 and LXA4 represent promising novel therapeutic targets for managing HG-induced cardiac inflammation and fibrosis.
Abstract:
Cardiac cells respond to various pathophysiological stimuli, synthesizing inflammatory molecules that allow tissue repair and proper functioning of the heart; however, perpetuation of the inflammatory response can lead to cardiac fibrosis and heart dysfunction. High concentration of glucose (HG) induces an inflammatory and fibrotic response in the heart. Cardiac fibroblasts (CFs) are resident cells of the heart that respond to deleterious stimuli, increasing the synthesis and secretion of both fibrotic and proinflammatory molecules. The molecular mechanisms that regulate inflammation in CFs are unknown, thus, it is important to find new targets that allow improving treatments for HG-induced cardiac dysfunction. NFκB is the master regulator of inflammation, while FoxO1 is a new participant in the inflammatory response, including inflammation induced by HG; however, its role in the inflammatory response of CFs is unknown. The inflammation resolution is essential for an effective tissue repair and recovery of the organ function. Lipoxin A4 (LXA4) is an anti-inflammatory agent with cytoprotective effects, while its cardioprotective effects have not been fully studied. Thus, in this study, we analyze the role of p65/NFκB, and FoxO1 in CFs inflammation induced by HG, evaluating the anti-inflammatory properties of LXA4. Our results demonstrated that HG induces the inflammatory response in CFs, using an in vitro and ex vivo model, while FoxO1 inhibition and silencing prevented HG effects. Additionally, LXA4 inhibited the activation of FoxO1 and p65/NFκB, and inflammation of CFs induced by HG. Therefore, our results suggest that FoxO1 and LXA4 could be novel drug targets for the treatment of HG-induced inflammatory and fibrotic disorders in the heart.
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